Claims
- 1. In apparatus for grinding one or more profiles in a length of an elongated article by advancing said article axially through a gap formed between continuously rotating work and regulating wheels during a grinding cycle in which said gap is adjustable according to the diameter to which said article is to be ground, the improvement comprising:signal-responsive means for incrementally adjusting said gap in a radial direction relative to axial advancement of said article through said gap; image detecting means upstream of said wheels through which said article is advanced including a series of image detectors for generating a succession of input signals in response to advancement of a trailing end of said article thereacross; and gap control means for generating and transmitting a plurality of output signals to said signal-responsive means wherein each of said output signals is generated in response to receiving a predetermined number of input signals from said image detecting means independently of the rate of axial advancement of said article.
- 2. In apparatus according to claim 1 wherein said signal-responsive means is operative to adjust said gap a predetermined number of radial increments (N) progressively in an outward radial direction (Delta H) in forming at least one tapered profile.
- 3. In apparatus according to claim 2 wherein said signal-responsive means is operative to adjust said gap in an outward radial direction at equally spaced lengthwise increments (L) along the full length of said profile.
- 4. In apparatus according to claim 3 wherein said article is wire and said series of image detectors is defined by pixels at a spacing on the order of 0.005″, each of said input signals being generated in response to passage of a trailing end of said wire across each respective said pixel, and said gap control means generating each of said output signals at spaced intervals corresponding to said lengthwise increments (L), the maximum number (N) of said lengthwise increments (L) being equal to the difference in diameter of said wire at opposite ends of said tapered section divided by the minimum incremental distance that said signal-responsive means is capable of moving (Min H).
- 5. In apparatus according to claim 4 wherein said wire advances along an elongated slot in said image detection means, said slot being interposed between a light source and said series of image detectors.
- 6. In apparatus according to claim 5 wherein said series of image detectors is defined by a linear array of pixels intercepting light passing through said slot from said light source.
- 7. In apparatus according to claim 5 wherein said light source includes a reflector and an adjustable slit through which light is directed across the path of said slot and said array.
- 8. In apparatus according to claim 7 wherein said image detection means includes an elongated chamber made up of upper and lower halves movable into and away from closed relation to one another, said slot extending along said lower half of said chamber and said series of image detectors disposed beneath said slot.
- 9. In apparatus according to claim 8 wherein said light source is disposed in said upper half of said chamber.
- 10. In apparatus according to claim 5 wherein said image detection means includes a module housing said series of image detectors for each said tapered section to be formed in said wire and means for adjusting the spacing between said module and said wheels.
- 11. In apparatus according to claim 1 wherein said gap control means includes a stepper motor, said input signals are electronic signals, and computer programmable means associated with said image detecting means for receiving said input signals and sending commands to said stepper motor at equally spaced intervals defined by dimensional data previously entered and stored in said computing means which define the desired dimensions of said profiles.
- 12. In apparatus according to claim 1 wherein said image detecting means includes a plurality of image detection modules of a length at least equal to the longitudinal dimension of said profile, each of said modules having a lower image detection chamber, an intermediate adjustable article-guiding elongated slot, and an upper light sourcing chamber.
- 13. In apparatus according to claim 12 wherein said lower detection chamber houses linear arrays of closely spaced pixels at a uniform spacing not to exceed 0.005″ having individual outputs storing a readable charge proportional to the amount of incident light energy received.
- 14. In apparatus according to claim 13 wherein said article-guiding elongated slot is disposed at the center line of said linear array of pixels, said article being free to advance longitudinally and to rotate about its axis unopposed as it is pulled and made to spin by the action of said regulating wheel in conjunction with said grinding wheel.
- 15. In apparatus according to claim 12, said upper light sourcing chamber including a linear array of adjustable intensity light sources of a wave length consistent with said pixels, said chamber positioned directly above said pixels and said slot and movable to permit loading of said articles into said slot.
- 16. In apparatus according to claim 15, said light sourcing chamber including means for adjusting light intensity in accordance with the amount of charge produced on said pixels for different types of said articles.
- 17. In apparatus for grinding one or more tapered sections in a length of an elongated wire by advancing said wire axially through a gap formed between continuously rotating work and regulating wheels during a grinding cycle in which said gap is adjustable according to the diameter to which said wire is to be ground, the improvement comprising:signal-responsive means for incrementally adjusting said gap in a radial direction relative to axial advancement of said wire through said gap wherein said signal-responsive means is operative to adjust said gap a predetermined number of radial increments (N) progressively in an outward radial direction (Delta H) in forming at least one tapered section (T); image detecting means upstream of said wheels through which said wire is advanced including spaced detection modules each having a series of image detectors for generating a succession of input pulses in response to advancement of a trailing end of said wire thereacross wherein said series of image detectors is defined by pixels, each of said input pulses being generated in response to passage of a trailing end of said wire across each respective said pixel; and gap control means for generating and transmitting a plurality of output pulses to said signal-responsive means wherein each of said output pulses is generated in response to receiving a predetermined number of input pulses from said image detecting means and wherein said signal-responsive means is operative to adjust said gap in an outward radial direction at equally spaced lengthwise increments (L) along the full length of said tapered section (T), and said gap control means generating said output pulses at spaced intervals corresponding to said lengthwise increments (L), the maximum number (N) of said lengthwise increments (L) being equal to the difference in diameter of said wire at opposite ends of said tapered section divided by the minimum incremental distance that said signal-responsive means is capable of moving (Min H).
- 18. In apparatus according to claim 17 wherein said wire advances along an elongated slot in said image detection means, said slot being interposed between a light source and said series of image detectors.
- 19. In apparatus according to claim 18 wherein said series of image detectors is defined by a linear array of said pixels intercepting light passing through said slot from said light source, and said light source includes a reflector and an adjustable slit through which light is directed across the path of said slot and said array.
- 20. In apparatus according to claim 19 wherein each detection module includes an elongated chamber made up of upper and lower halves movable into and away from closed relation to one another, said slot extending along said lower half of said chamber and said series of image detectors disposed beneath said slot.
- 21. In apparatus according to claim 20 wherein said light source is disposed in said upper half of said chamber.
- 22. The method of grinding one or more tapered sections in a length of an elongated wire by advancing said wire axially through a gap formed between rotating work and regulating wheels wherein said gap is adjustable according to the diameter to which said wire is to be ground and wherein signal-responsive means is provided for adjusting said gap, the steps comprising:rotating said wheels at a constant rate of speed during each grinding cycle; advancing said wire across a series of image detectors and generating a succession of input signals in response to advancement of the trailing end of said wire thereacross; and generating and transmitting an output signal to said signal-responsive means in response to receiving a predetermined number of said input signals; and adjusting the gap between said wheels independently of the rate of axial movement of said wire.
- 23. The method according to claim 22 including the step of adjusting said gap a predetermined number of radial increments progressively in an outward radial direction in forming at least one profile.
- 24. The method according to claim 23 characterized by adjusting said gap in an outward radial direction at equally spaced lengthwise increments along the full length of said profile.
- 25. The method of grinding according to claim 22 including the step of entering and storing dimensional data defining each of said profiles to be ground and calculating the inward or outward distance of movement required for said regulating wheel as said wire is advanced across said image detectors.
CROSS REFERENCE TO RELATED APPLICATION
This application claims the benefit of Provisional Ser. No. 60/032,176, filed Dec. 4, 1996 for METHOD AND APPARATUS FOR CENTERLESS GRINDING, by Louis Archilla and owned by the assignee of the present application.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
102e Date |
371c Date |
PCT/US97/21593 |
|
WO |
00 |
5/24/1999 |
5/24/1999 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO98/24590 |
6/11/1998 |
WO |
A |
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
5480342 |
Bannayan et al. |
Jan 1996 |
|
5746644 |
Cheetham |
May 1998 |
|
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/032176 |
Dec 1996 |
US |